scispace - formally typeset
M

Maria Isabel Rocha-Gaso

Researcher at University of Quintana Roo

Publications -  12
Citations -  394

Maria Isabel Rocha-Gaso is an academic researcher from University of Quintana Roo. The author has contributed to research in topics: Surface acoustic wave & Signal. The author has an hindex of 6, co-authored 12 publications receiving 339 citations. Previous affiliations of Maria Isabel Rocha-Gaso include University of Lorraine & Polytechnic University of Valencia.

Papers
More filters
Journal ArticleDOI

Surface generated acoustic wave biosensors for the detection of pathogens: a review.

TL;DR: The state-of-the-art of SGAW biosensors for the detection of pathogens are described, being this topic an issue of extremely importance for the human health.
Book ChapterDOI

Love Wave Biosensors: A Review

TL;DR: In this paper, the authors provide an updated insight in the mentioned topics focused on biosensors applications, focusing on the main challenges of the acoustic techniques remain on the improvement of the sensitivity with the objective to reduce the limit of detection (LOD), multi-analysis and multi-analyte detection (HTS), and integration capabilities.

State of the Art in Biosensors - General Aspects

TL;DR: Advances in Industrial Design Engineering as discussed by the authors is the successor to "Industrial Design - New Frontiers" (2011) and develops the concepts present in the previous book further, as well as reaching new areas of theory and practice in industrial design.
Journal ArticleDOI

Biosensors to Diagnose Chagas Disease: A Brief Review.

TL;DR: It is concluded that biosensors could improve the accuracy of CD diagnosis and the follow-up of patients’ treatments in terms of the rapidity of results, small sample volume, high integration, ease of use, real-time and low cost detection when compared with current conventional technologies.
Proceedings ArticleDOI

Mass sensitivity evaluation of a Love wave sensor using the 3D Finite Element Method

TL;DR: In this paper, a novel approach to evaluate the mass sensitivity of a Love wave (LW) sensor was described, where a ZnO/XY LiNbO3 delay line based device with a sensing film was modeled and simulated applying the 3D- Finite Element Method (FEM) and the signal delays due to the thickness changes induced to the sensing film were registered and measured at the output Interdigital Transducer (IDT).